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Why is the output of the following two list comprehensions different, even though f and the lambda function are the same ?

f = lambda x: x*x
[f(x) for x in range(10)]

and

[lambda x: x*x for x in range(10)]

Mind you, both type(f) and type(lambda x: x*x) return the same type.

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[lambda x: x*x for x in range(10)] is faster than the first one, since it does not call an outside loop function, f repeatedly. –  riza May 20 '11 at 18:50
    
@Selinap: ...no, instead you're creating a brand spanking new function each and every time through the loop. ...and the overhead of creating this new function, then calling is a little slower (on my system anyway). –  Gerrat May 20 '11 at 19:00
    
@Gerrat: Even with overhead, it is still faster. But, of course [x*x for x in range(10)] is better. –  riza May 20 '11 at 19:13

3 Answers 3

up vote 31 down vote accepted

The first one create a single lambda function and calls it ten times.

The second one doesn't call the function. It creates 10 different lambda functions. It puts all of those in a list. To make it equivalent to the first you need:

[(lambda x: x*x)(x) for x in range(10)]

Or better yet:

[x*x for x in range(10)]
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2  
Or map(lambda x: x*x, range(10)), which was probably what the OP meant in the first place. –  Daniel Roseman May 20 '11 at 18:53
    
yeah, lambda x : x*x .. (x) seems tenet. –  staticor Aug 19 '13 at 16:09

The first one

f = lambda x: x*x
[f(x) for x in range(10)]

runs f() for each value in the range so it does f(x) for each value

the second one

[lambda x: x*x for x in range(10)]

runs the lambda for each value in the list, so it generates all of those functions.

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The big difference is that the first example actually invokes the lambda f(x), while the second example doesn't.

Your first example is equivalent to [(lambda x: x*x)(x) for x in range(10)] while your second example is equivalent to [f for x in range(10)].

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